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dqrt05.f 7.4 kB

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  1. *> \brief \b DQRT05
  2. *
  3. * =========== DOCUMENTATION ===========
  4. *
  5. * Online html documentation available at
  6. * http://www.netlib.org/lapack/explore-html/
  7. *
  8. * Definition:
  9. * ===========
  10. *
  11. * SUBROUTINE DQRT05(M,N,L,NB,RESULT)
  12. *
  13. * .. Scalar Arguments ..
  14. * INTEGER LWORK, M, N, L, NB, LDT
  15. * .. Return values ..
  16. * DOUBLE PRECISION RESULT(6)
  17. *
  18. *
  19. *> \par Purpose:
  20. * =============
  21. *>
  22. *> \verbatim
  23. *>
  24. *> DQRT05 tests DTPQRT and DTPMQRT.
  25. *> \endverbatim
  26. *
  27. * Arguments:
  28. * ==========
  29. *
  30. *> \param[in] M
  31. *> \verbatim
  32. *> M is INTEGER
  33. *> Number of rows in lower part of the test matrix.
  34. *> \endverbatim
  35. *>
  36. *> \param[in] N
  37. *> \verbatim
  38. *> N is INTEGER
  39. *> Number of columns in test matrix.
  40. *> \endverbatim
  41. *>
  42. *> \param[in] L
  43. *> \verbatim
  44. *> L is INTEGER
  45. *> The number of rows of the upper trapezoidal part the
  46. *> lower test matrix. 0 <= L <= M.
  47. *> \endverbatim
  48. *>
  49. *> \param[in] NB
  50. *> \verbatim
  51. *> NB is INTEGER
  52. *> Block size of test matrix. NB <= N.
  53. *> \endverbatim
  54. *>
  55. *> \param[out] RESULT
  56. *> \verbatim
  57. *> RESULT is DOUBLE PRECISION array, dimension (6)
  58. *> Results of each of the six tests below.
  59. *>
  60. *> RESULT(1) = | A - Q R |
  61. *> RESULT(2) = | I - Q^H Q |
  62. *> RESULT(3) = | Q C - Q C |
  63. *> RESULT(4) = | Q^H C - Q^H C |
  64. *> RESULT(5) = | C Q - C Q |
  65. *> RESULT(6) = | C Q^H - C Q^H |
  66. *> \endverbatim
  67. *
  68. * Authors:
  69. * ========
  70. *
  71. *> \author Univ. of Tennessee
  72. *> \author Univ. of California Berkeley
  73. *> \author Univ. of Colorado Denver
  74. *> \author NAG Ltd.
  75. *
  76. *> \ingroup double_lin
  77. *
  78. * =====================================================================
  79. SUBROUTINE DQRT05(M,N,L,NB,RESULT)
  80. IMPLICIT NONE
  81. *
  82. * -- LAPACK test routine --
  83. * -- LAPACK is a software package provided by Univ. of Tennessee, --
  84. * -- Univ. of California Berkeley, Univ. of Colorado Denver and NAG Ltd..--
  85. *
  86. * .. Scalar Arguments ..
  87. INTEGER LWORK, M, N, L, NB, LDT
  88. * .. Return values ..
  89. DOUBLE PRECISION RESULT(6)
  90. *
  91. * =====================================================================
  92. *
  93. * ..
  94. * .. Local allocatable arrays
  95. DOUBLE PRECISION, ALLOCATABLE :: AF(:,:), Q(:,:),
  96. $ R(:,:), RWORK(:), WORK( : ), T(:,:),
  97. $ CF(:,:), DF(:,:), A(:,:), C(:,:), D(:,:)
  98. *
  99. * .. Parameters ..
  100. DOUBLE PRECISION ONE, ZERO
  101. PARAMETER( ZERO = 0.0, ONE = 1.0 )
  102. * ..
  103. * .. Local Scalars ..
  104. INTEGER INFO, J, K, M2, NP1
  105. DOUBLE PRECISION ANORM, EPS, RESID, CNORM, DNORM
  106. * ..
  107. * .. Local Arrays ..
  108. INTEGER ISEED( 4 )
  109. * ..
  110. * .. External Functions ..
  111. DOUBLE PRECISION DLAMCH, DLANGE, DLANSY
  112. LOGICAL LSAME
  113. EXTERNAL DLAMCH, DLANGE, DLANSY, LSAME
  114. * ..
  115. * .. Data statements ..
  116. DATA ISEED / 1988, 1989, 1990, 1991 /
  117. *
  118. EPS = DLAMCH( 'Epsilon' )
  119. K = N
  120. M2 = M+N
  121. IF( M.GT.0 ) THEN
  122. NP1 = N+1
  123. ELSE
  124. NP1 = 1
  125. END IF
  126. LWORK = M2*M2*NB
  127. *
  128. * Dynamically allocate all arrays
  129. *
  130. ALLOCATE(A(M2,N),AF(M2,N),Q(M2,M2),R(M2,M2),RWORK(M2),
  131. $ WORK(LWORK),T(NB,N),C(M2,N),CF(M2,N),
  132. $ D(N,M2),DF(N,M2) )
  133. *
  134. * Put random stuff into A
  135. *
  136. LDT=NB
  137. CALL DLASET( 'Full', M2, N, ZERO, ZERO, A, M2 )
  138. CALL DLASET( 'Full', NB, N, ZERO, ZERO, T, NB )
  139. DO J=1,N
  140. CALL DLARNV( 2, ISEED, J, A( 1, J ) )
  141. END DO
  142. IF( M.GT.0 ) THEN
  143. DO J=1,N
  144. CALL DLARNV( 2, ISEED, M-L, A( MIN(N+M,N+1), J ) )
  145. END DO
  146. END IF
  147. IF( L.GT.0 ) THEN
  148. DO J=1,N
  149. CALL DLARNV( 2, ISEED, MIN(J,L), A( MIN(N+M,N+M-L+1), J ) )
  150. END DO
  151. END IF
  152. *
  153. * Copy the matrix A to the array AF.
  154. *
  155. CALL DLACPY( 'Full', M2, N, A, M2, AF, M2 )
  156. *
  157. * Factor the matrix A in the array AF.
  158. *
  159. CALL DTPQRT( M,N,L,NB,AF,M2,AF(NP1,1),M2,T,LDT,WORK,INFO)
  160. *
  161. * Generate the (M+N)-by-(M+N) matrix Q by applying H to I
  162. *
  163. CALL DLASET( 'Full', M2, M2, ZERO, ONE, Q, M2 )
  164. CALL DGEMQRT( 'R', 'N', M2, M2, K, NB, AF, M2, T, LDT, Q, M2,
  165. $ WORK, INFO )
  166. *
  167. * Copy R
  168. *
  169. CALL DLASET( 'Full', M2, N, ZERO, ZERO, R, M2 )
  170. CALL DLACPY( 'Upper', M2, N, AF, M2, R, M2 )
  171. *
  172. * Compute |R - Q'*A| / |A| and store in RESULT(1)
  173. *
  174. CALL DGEMM( 'T', 'N', M2, N, M2, -ONE, Q, M2, A, M2, ONE, R, M2 )
  175. ANORM = DLANGE( '1', M2, N, A, M2, RWORK )
  176. RESID = DLANGE( '1', M2, N, R, M2, RWORK )
  177. IF( ANORM.GT.ZERO ) THEN
  178. RESULT( 1 ) = RESID / (EPS*ANORM*MAX(1,M2))
  179. ELSE
  180. RESULT( 1 ) = ZERO
  181. END IF
  182. *
  183. * Compute |I - Q'*Q| and store in RESULT(2)
  184. *
  185. CALL DLASET( 'Full', M2, M2, ZERO, ONE, R, M2 )
  186. CALL DSYRK( 'U', 'C', M2, M2, -ONE, Q, M2, ONE, R, M2 )
  187. RESID = DLANSY( '1', 'Upper', M2, R, M2, RWORK )
  188. RESULT( 2 ) = RESID / (EPS*MAX(1,M2))
  189. *
  190. * Generate random m-by-n matrix C and a copy CF
  191. *
  192. DO J=1,N
  193. CALL DLARNV( 2, ISEED, M2, C( 1, J ) )
  194. END DO
  195. CNORM = DLANGE( '1', M2, N, C, M2, RWORK)
  196. CALL DLACPY( 'Full', M2, N, C, M2, CF, M2 )
  197. *
  198. * Apply Q to C as Q*C
  199. *
  200. CALL DTPMQRT( 'L','N', M,N,K,L,NB,AF(NP1,1),M2,T,LDT,CF,M2,
  201. $ CF(NP1,1),M2,WORK,INFO)
  202. *
  203. * Compute |Q*C - Q*C| / |C|
  204. *
  205. CALL DGEMM( 'N', 'N', M2, N, M2, -ONE, Q, M2, C, M2, ONE, CF, M2 )
  206. RESID = DLANGE( '1', M2, N, CF, M2, RWORK )
  207. IF( CNORM.GT.ZERO ) THEN
  208. RESULT( 3 ) = RESID / (EPS*MAX(1,M2)*CNORM)
  209. ELSE
  210. RESULT( 3 ) = ZERO
  211. END IF
  212. *
  213. * Copy C into CF again
  214. *
  215. CALL DLACPY( 'Full', M2, N, C, M2, CF, M2 )
  216. *
  217. * Apply Q to C as QT*C
  218. *
  219. CALL DTPMQRT( 'L','T',M,N,K,L,NB,AF(NP1,1),M2,T,LDT,CF,M2,
  220. $ CF(NP1,1),M2,WORK,INFO)
  221. *
  222. * Compute |QT*C - QT*C| / |C|
  223. *
  224. CALL DGEMM('T','N',M2,N,M2,-ONE,Q,M2,C,M2,ONE,CF,M2)
  225. RESID = DLANGE( '1', M2, N, CF, M2, RWORK )
  226. IF( CNORM.GT.ZERO ) THEN
  227. RESULT( 4 ) = RESID / (EPS*MAX(1,M2)*CNORM)
  228. ELSE
  229. RESULT( 4 ) = ZERO
  230. END IF
  231. *
  232. * Generate random n-by-m matrix D and a copy DF
  233. *
  234. DO J=1,M2
  235. CALL DLARNV( 2, ISEED, N, D( 1, J ) )
  236. END DO
  237. DNORM = DLANGE( '1', N, M2, D, N, RWORK)
  238. CALL DLACPY( 'Full', N, M2, D, N, DF, N )
  239. *
  240. * Apply Q to D as D*Q
  241. *
  242. CALL DTPMQRT('R','N',N,M,N,L,NB,AF(NP1,1),M2,T,LDT,DF,N,
  243. $ DF(1,NP1),N,WORK,INFO)
  244. *
  245. * Compute |D*Q - D*Q| / |D|
  246. *
  247. CALL DGEMM('N','N',N,M2,M2,-ONE,D,N,Q,M2,ONE,DF,N)
  248. RESID = DLANGE('1',N, M2,DF,N,RWORK )
  249. IF( CNORM.GT.ZERO ) THEN
  250. RESULT( 5 ) = RESID / (EPS*MAX(1,M2)*DNORM)
  251. ELSE
  252. RESULT( 5 ) = ZERO
  253. END IF
  254. *
  255. * Copy D into DF again
  256. *
  257. CALL DLACPY('Full',N,M2,D,N,DF,N )
  258. *
  259. * Apply Q to D as D*QT
  260. *
  261. CALL DTPMQRT('R','T',N,M,N,L,NB,AF(NP1,1),M2,T,LDT,DF,N,
  262. $ DF(1,NP1),N,WORK,INFO)
  263. *
  264. * Compute |D*QT - D*QT| / |D|
  265. *
  266. CALL DGEMM( 'N', 'T', N, M2, M2, -ONE, D, N, Q, M2, ONE, DF, N )
  267. RESID = DLANGE( '1', N, M2, DF, N, RWORK )
  268. IF( CNORM.GT.ZERO ) THEN
  269. RESULT( 6 ) = RESID / (EPS*MAX(1,M2)*DNORM)
  270. ELSE
  271. RESULT( 6 ) = ZERO
  272. END IF
  273. *
  274. * Deallocate all arrays
  275. *
  276. DEALLOCATE ( A, AF, Q, R, RWORK, WORK, T, C, D, CF, DF)
  277. RETURN
  278. END